Related Experiment Video
Updated: May 18, 2026

An Adipocyte Cell Culture Model to Study the Impact of Protein and Micro-RNA Modulation on Adipocyte Function
Published on: May 4, 2021
Aberrantly elevated microRNA-34a in obesity attenuates hepatic responses to FGF19 by targeting a membrane coreceptor
Ting Fu1, Sung-E Choi, Dong-Hyun Kim
1Department of Molecular and Integrative Physiology, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.
Abstract:
MicroRNA-34a (miR-34a) is the most highly elevated hepatic miR in obese mice and is also substantially elevated in patients who have steatosis, but its role in obesity and metabolic dysfunction remains unclear. After a meal, FGF19 is secreted from the ileum; binds to a hepatic membrane receptor complex, FGF19 receptor 4 and coreceptor β-Klotho (βKL); and mediates postprandial responses under physiological conditions, but hepatic responses to FGF19 signaling were shown to be impaired in patients with steatosis. Here, we show an unexpected functional link between aberrantly elevated miR-34a and impaired βKL/FGF19 signaling in obesity. In vitro studies show that miR-34a down-regulates βKL by binding to the 3' UTR of βKL mRNA. Adenoviral-mediated overexpression of miR-34a in mice decreased hepatic βKL levels, impaired FGF19-activated ERK and glycogen synthase kinase signaling, and altered expression of FGF19 metabolic target genes. Consistent with these results, βKL levels were decreased and hepatic responses to FGF19 were severely impaired in dietary obese mice that have elevated miR-34a. Remarkably, in vivo antisense inhibition of miR-34a in obese mice partially restored βKL levels and improved FGF19 target gene expression and metabolic outcomes, including decreased liver fat. Further, anti-miR-34a treatment in primary hepatocytes of obese mice restored FGF19-activated ERK and glycogen synthase kinase signaling in a βKL-dependent manner. These results indicate that aberrantly elevated miR-34a in obesity attenuates hepatic FGF19 signaling by directly targeting βKL. The miR-34a/βKL/FGF19 axis may present unique therapeutic targets for FGF19-related human diseases, including metabolic disorders and cancer.
Insights
Elevated microRNA-34a (miR-34a) in obesity impairs liver function by targeting beta-Klotho (βKL), disrupting FGF19 signaling. Inhibiting miR-34a restores βKL and improves metabolic health in obese mice.
Area of Science:
- Metabolic disease research
- Molecular biology
- Hepatology
Background:
- Obesity and steatosis are linked to elevated hepatic microRNA-34a (miR-34a).
- Fibroblast Growth Factor 19 (FGF19) signaling is crucial for postprandial metabolic responses but impaired in steatosis.
- The precise role of miR-34a in obesity-related metabolic dysfunction was unclear.
Purpose of the Study:
- To investigate the functional link between elevated miR-34a and impaired FGF19 signaling in obesity.
- To elucidate the molecular mechanism by which miR-34a affects β-Klotho (βKL) and FGF19 signaling.
Main Methods:
- In vitro studies assessing miR-34a's effect on βKL mRNA.
- Adenoviral-mediated miR-34a overexpression in mice.
- In vivo antisense inhibition of miR-34a in diet-induced obese mice.
- Analysis of hepatic βKL levels, FGF19 signaling pathways (ERK, GSK), and gene expression.
Main Results:
- miR-34a directly down-regulates βKL by binding to its 3' UTR.
- miR-34a overexpression in mice decreased βKL, impaired FGF19 signaling, and altered metabolic gene expression.
- Obese mice showed reduced βKL and impaired hepatic FGF19 responses.
- Antisense inhibition of miR-34a partially restored βKL, improved FGF19 signaling, and reduced liver fat in obese mice.
Conclusions:
- Aberrantly elevated miR-34a in obesity attenuates hepatic FGF19 signaling by directly targeting and reducing βKL.
- The miR-34a/βKL/FGF19 axis represents a potential therapeutic target for metabolic disorders and associated conditions like cancer.
Related Concept Videos
Obesity
TGF - β Signaling Pathway
MicroRNAs
MicroRNAs
MicroRNAs

